首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Electron Spin-Lattice Relaxation Mechanisms of Nitroxyl Radicals in Ionic Liquids and Conventional Organic Liquids: Temperature Dependence of a Thermally Activated Process
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Electron Spin-Lattice Relaxation Mechanisms of Nitroxyl Radicals in Ionic Liquids and Conventional Organic Liquids: Temperature Dependence of a Thermally Activated Process

机译:离子液体和常规有机液体中硝基氧自由基的电子自旋晶格弛豫机理:热活化过程的温度依赖性

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During the past two decades, several studies have established a significant role played by a thermally activated process in the electron spin relaxation of nitroxyl free radicals in liquid solutions. Its role has been used to explain the spin relaxation behavior of these radicals in a wide range of viscosities and microwave frequencies. However, no temperature dependence of this process has been reported. In this work, our main aim was to investigate the temperature dependence of this process in neat solvents. Electron spin-lattice relaxation times of 2,2,6,6-tetramethylpiperidine-1-oxyl (TEMPO) and 4-hydroxy-TEMPO (TEMPOL), in X-band microwave frequency, were measured by the pulse saturation recovery technique in three room-temperature ionic liquids ([bmim][BF4], [emim][BF4], and [bmim][PF6]), di-isononyl phthalate, and sec-butyl benzene. The ionic liquids provided a wide range of viscosity in a modest range of temperature. An auxiliary aim was to examine whether the dynamics of a probe molecule dissolved in ionic liquids was different from that in conventional molecular liquids, as claimed in several reports on fluorescence dynamics in ionic liquids. This was the reason for the inclusion of di-isononyl phthalate, whose viscosities are similar to that of the ionic liquids in similar temperatures, and sec-butyl benzene. Rotational correlation times of the nitroxyl radicals were determined from the hyperfine dependence of the electron paramagnetic resonance (EPR) line widths. Observation of highly well-resolved proton hyperfine lines, riding over the nitrogen hyperfine lines, in the low viscosity regime in all the solvents, gave more accurate values of the rotational correlation times than the values generally measured in the absence of these hyperfine lines and reported in the literature. The measured rotational correlation times obeyed a modified Stokes-Einstein-Debye relation of temperature dependence in all solvents. By separating the contributions of g-anisotropy, A-anisotropy and spin-rotation interactions from the observed electron spin-lattice relaxation rates, the contribution of the thermally activated process was obtained and compared with its expression for the temperature dependence. Consistent values of various fitted parameters, used in the expression of the thermal process, have been found, and the applicability of the expression of the thermally activated process to describe the temperature dependence in liquid solutions has been vindicated. Moderate solvent dependence of the thermally activated process has also been observed. The rotational correlation times and the spin lattice relaxation processes of nitroxyls in ionic liquids and in conventional organic liquids are shown to be explicable on a similar footing, requiring no special treatment for ionic liquids.
机译:在过去的二十年中,几项研究已经确立了热活化过程在液体溶液中硝氧基自由基的电子自旋弛豫中所起的重要作用。它的作用已被用来解释这些自由基在各种粘度和微波频率下的自旋弛豫行为。然而,尚未报道该过程的温度依赖性。在这项工作中,我们的主要目的是研究在纯溶剂中该过程的温度依赖性。通过脉冲饱和恢复技术在3个波段中分别测量了2,2,6,6-四甲基哌啶-1-氧基(TEMPO)和4-羟基-TEMPO(TEMPOL)的电子自旋晶格弛豫时间室温离子液体([bmim] [BF4],[emim] [BF4]和[bmim] [PF6]),邻苯二甲酸二异壬酯和仲丁基苯。离子液体在适度的温度范围内提供了广泛的粘度。辅助目的是检查溶解在离子液体中的探针分子的动力学与常规分子液体中的动力学是否不同,正如有关离子液体中荧光动力学的几篇报道所声称的那样。这就是为什么要包括邻苯二甲酸二异壬酯和仲丁基苯的原因,邻苯二甲酸二异壬酯的粘度类似于在相似温度下离子液体的粘度。由电子顺磁共振(EPR)线宽的超精细依赖性确定了硝酰基自由基的旋转相关时间。在所有溶剂中,在低粘度条件下观察到高度分辨良好的质子超细线,越过氮超细线,比没有这些超细线时通常测得的值,旋转相关时间的值更准确。在文学中。测得的旋转相关时间在所有溶剂中均遵循修正的温度依赖性斯托克斯-爱因斯坦-德拜关系。通过从观察到的电子自旋晶格弛豫率中分离出g各向异性,A各向异性和自旋旋转相互作用的贡献,获得了热活化过程的贡献并将其与温度依赖性的表达式进行比较。已经发现在热过程的表达中使用的各种拟合参数的一致值,并且已经证明了热活化过程的表达用于描述液体溶液中的温度依赖性的适用性。还已经观察到热活化过程的中等溶剂依赖性。硝酸根离子液体和常规有机液体中的旋转相关时间和自旋晶格弛豫过程显示在相似的基础上是可以解释的,不需要对离子液体进行特殊处理。

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